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Multiattribute Group Decision-Making Based on Linguistic Pythagorean Fuzzy Interaction Partitioned Bonferroni Mean Aggregation Operators

机译:基于语言勾股模糊交互作用划分的Bonferroni平均集合算子的多属性群决策

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The partitioned Bonferroni mean (PBM) operator can efficiently aggregate inputs, which are divided into parts based on their interrelationships. To date, it has not been used to aggregate linguistic Pythagorean fuzzy numbers (LPFNs). In this paper, we extend the PBM operator and partitioned geometric Bonferroni mean (PGBM) operator to the linguistic Pythagorean fuzzy sets (LPFSs) and use them to develop a novel multiattribute group decision-making model under the linguistic Pythagorean fuzzy environment. We first define some novel operational laws for LPFNs, which take into consideration the interactions between the membership degree (MD) and nonmembership degree (NMD) from two different LPFNs. Based on these novel operational laws, we put forward the interaction PBM (LPFIPBM) operator, the weighted interaction PBM (LPFWIPBM) operator, the interaction PGBM (LPFIPGBM) operator, and the weighted interaction PGBM (LPFWIPGBM) operator. Then, we study some properties of these proposed operators and discuss their special cases. Based on the proposed LPFWIPBM and LPFWIPGBM operators, a novel multiattribute group decision-making model is developed to process the linguistic Pythagorean fuzzy information. Finally, some illustrative examples are introduced to compare our proposed methods with the existing ones.
机译:分区的Bonferroni均值(PBM)运算符可以有效地汇总输入,这些输入根据它们之间的相互关系而分为多个部分。迄今为止,它尚未用于聚合语言勾股模糊数(LPFN)。在本文中,我们将PBM算子和划分的几何Bonferroni均值(PGBM)算子扩展到语言毕达哥拉斯模糊集(LPFS),并使用它们来开发一种新的多属性群体决策模型。我们首先为LPFN定义了一些新颖的运算法则,其中考虑了来自两个不同LPFN的隶属度(MD)和非隶属度(NMD)之间的相互作用。基于这些新颖的运算法则,我们提出了交互PBM(LPFIPBM)运算符,加权交互PBM(LPFWIPBM)运算符,交互PGBM(LPFIPGBM)运算符和加权交互PGBM(LPFWIPGBM)运算符。然后,我们研究这些拟议的运营商的一些性质,并讨论他们的特殊情况。基于所提出的LPFWIPBM和LPFWIPGBM算子,建立了一种新的多属性群决策模型来处理语言的勾股模糊信息。最后,引入一些说明性示例,以将我们提出的方法与现有方法进行比较。

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